Temperature dependence bending rigidity of 2D membranes: Graphene as an example

Bending rigidity plays an important role in graphene from mechanical behavior to magnetic and electrical properties. However, it is still in a theoretical debate whether the bending rigidity of graphene increase or decrease with increasing temperature. The liquid membranes renormalization theory is...

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Main Author: Lijun Yi
Format: Article
Language:English
Published: AIP Publishing LLC 2018-07-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5038625
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spelling doaj-0b2855b315724d1da593c501f3b2f10c2020-11-25T00:00:42ZengAIP Publishing LLCAIP Advances2158-32262018-07-0187075104075104-1210.1063/1.5038625094806ADVTemperature dependence bending rigidity of 2D membranes: Graphene as an exampleLijun Yi0Piezoelectric Device Laboratory, School of Mechanical Engineering & Mechanics, Ningbo University, 315211 Ningbo, People’s Republic of China and Department of Engineering Mechanics, Tsinghua University, Beijing 100084, People’s Republic of ChinaBending rigidity plays an important role in graphene from mechanical behavior to magnetic and electrical properties. However, it is still in a theoretical debate whether the bending rigidity of graphene increase or decrease with increasing temperature. The liquid membranes renormalization theory is always used to calculate the bending modulus of 2D membrane (graphene) at different temperatures. Although this theory has been successfully used to describe the mechanical behavior of liquid membranes like cell membrane, we point out some possible unsuitable places when it is used to evaluate the temperature effect on the bending rigidity of graphene. The energy difference between the notional planar and pure bending graphene is related to the definition of the bending rigidity directly. Based on this energy variation analysis, we demonstrate that the bending rigidity of graphene increases with increasing temperature. Moreover, we reveal the mechanism is that the configurational entropy plays a crucial role in the variation of the free energy of graphene with increasing temperature. Our approach also paves a way to investigate the temperature effect on the bending rigidity of other 2D materials.http://dx.doi.org/10.1063/1.5038625
collection DOAJ
language English
format Article
sources DOAJ
author Lijun Yi
spellingShingle Lijun Yi
Temperature dependence bending rigidity of 2D membranes: Graphene as an example
AIP Advances
author_facet Lijun Yi
author_sort Lijun Yi
title Temperature dependence bending rigidity of 2D membranes: Graphene as an example
title_short Temperature dependence bending rigidity of 2D membranes: Graphene as an example
title_full Temperature dependence bending rigidity of 2D membranes: Graphene as an example
title_fullStr Temperature dependence bending rigidity of 2D membranes: Graphene as an example
title_full_unstemmed Temperature dependence bending rigidity of 2D membranes: Graphene as an example
title_sort temperature dependence bending rigidity of 2d membranes: graphene as an example
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2018-07-01
description Bending rigidity plays an important role in graphene from mechanical behavior to magnetic and electrical properties. However, it is still in a theoretical debate whether the bending rigidity of graphene increase or decrease with increasing temperature. The liquid membranes renormalization theory is always used to calculate the bending modulus of 2D membrane (graphene) at different temperatures. Although this theory has been successfully used to describe the mechanical behavior of liquid membranes like cell membrane, we point out some possible unsuitable places when it is used to evaluate the temperature effect on the bending rigidity of graphene. The energy difference between the notional planar and pure bending graphene is related to the definition of the bending rigidity directly. Based on this energy variation analysis, we demonstrate that the bending rigidity of graphene increases with increasing temperature. Moreover, we reveal the mechanism is that the configurational entropy plays a crucial role in the variation of the free energy of graphene with increasing temperature. Our approach also paves a way to investigate the temperature effect on the bending rigidity of other 2D materials.
url http://dx.doi.org/10.1063/1.5038625
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